Showing posts with label Clues. Show all posts
Showing posts with label Clues. Show all posts

Thursday, October 25, 2012

Clues to cancer metastasis: Discovery points to potential therapies for bone metastasis

ScienceDaily (Oct. 11, 2012) — In recent years investigators have discovered that breast tumors are influenced by more than just the cancer cells within them. A variety of noncancerous cells, which in many cases constitute the majority of the tumor mass, form what is known as the "tumor microenvironment." This sea of noncancerous cells and the products they deposit appear to play key roles in tumor pathogenesis.
Among the key accomplices in the tumor microenvironment are mesenchymal stem cells (MSCs), a group of adult progenitor cells which have been shown to help breast cancers maneuver and spread to other parts of the body.
Now, new research sheds further light on how this is happening. Led by investigators at Beth Israel Deaconess Medical Center (BIDMC), the findings demonstrate that the lysyl oxidase (LOX) gene is spurred to production in cancer cells as a result of their contact with MSCs, and once produced, can help ensure the spread of otherwise weakly metastatic cancer cells from primary tumors to the lung and bones. Described on-line in the Proceedings of the National Academy of Sciences
(PNAS), this discovery not only provides key insights into the basic biology of tumor formation, but also offers a potential new direction in the pursuit of therapies for the treatment of bone metastasis.
"We don't have a lot of therapies that can target breast cancer once it has metastasized, particularly once cancer cells have lodged in the bone," says senior author Antoine Karnoub, PhD, an investigator in the Department of Pathology at BIDMC and Assistant Professor of Pathology at Harvard Medical School. "When breast cancer cells reach the skeleton, one way in which they cause damage is by breaking down bone tissue, which results in the bone's rich matrix releasing numerous factors. These factors, in turn, feed the cancer cells, setting in motion a vicious cycle that leaves patients susceptible to fractures, pain, and further metastasis."
MSCs are non-hematopoietic progenitor cells predominantly produced in the bone marrow that generate bone, cartilage, fat, and fibrous connective tissue. They additionally support immune cell development and are recruited to inflammatory sites throughout the body to help shut down immune responses and regenerate damaged tissues, as might occur during wound healing. Several years ago, as a postdoctoral researcher at the Whitehead Institute of the Massachusetts Institute of Technology, Karnoub began exploring the idea that MSCs were migrating to tumors after mistaking the cancer sites for inflammatory lesions in need of healing.
"We discovered that once MSCs had reached the tumor sites, they were actually helping in cancer metastasis, causing primary cancer cells to spread to other sites in the body," he explains. In this new paper, Karnoub wanted to find out, in greater molecular detail, how breast cancer cells respond to the influences of MSCs in order to better understand how cancer cells cross-talk with recruited cells in the microenvironment.
His scientific team first embarked on a straightforward experiment. "We took two dishes of cells, cancer cells and MSCs, and mixed them together," explains Karnoub. After three days, they removed the cancer cells and studied them to see how they had changed.
"We found that the lysyl oxidase [LOX] gene was highly upregulated in the cancer cells," he says. "It turns out that when a cancer cell comes in contact with an MSC, it flips on this LOX gene, turning it up by a factor of about 100. So our next question was, 'What happens to the cancer cells when they encounter this boost of LOX that they themselves have produced?'"
The answer, as revealed in subsequent experiments, was that LOX was setting in motion a cell program called epithelial-to-mesenchymal transition (EMT). During EMT, cancer cells that usually clump together undergo a transformation into cells that exhibit decreased adhesion to their neighbors and go their own way. As a result, these cancerous cells are able to migrate, significantly enhancing their ability to metastasize.
"When we put these cells back into mice, they not only formed tumors that metastasized to the lung, but also to the bone," says Karnoub. "This makes you wonder whether the cancer cells in primary tumors have become so acclimated to interacting with bone-derived MSCs that they can now grow more easily in the bone once they leave the tumor."
The investigators also wanted to find out if, by going through the EMT process, cancer cells were also acquiring the phenotypes of another highly aggressive feature of malignant cancer cells, those of cancer stem cells within the cores of most tumors.
"Cancer stem cells are believed to be responsible for the resurgence of tumors following chemotherapy treatment, and an increasing body of science is focused on understanding how CSCs function and how they originate," says Karnoub. "The processes of EMT and CSC formation have been described as being closely coupled and we asked whether LOX might be regulating CSC phenotypes, just as it was regulating EMT. To our surprise, this was not the case. This tells us that pathways that were once thought to be intimately intertwined and commonly tweaked may, in fact, be separate, and now we can start to tease out the respective circuitries with a bit more clarity."
Lastly, the investigators identified the mechanism that was enabling LOX to be turned on from outside the cell, a set of molecules called hyaluronic acid (HA) and CD44. "It turns out that the MSCs provide the HA while the cancer cells provide the CD44 and they work in tandem like a lock and key to upregulate LOX expression," explains Karnoub, adding that antagonists to HA and CD44, already in extensive investigations and clinical exploration, might be of increased use from a clinical standpoint, perhaps in managing bone metastasis.
"This work reveals yet another important component of the complexity of malignant progression," says Robert Weinberg, PhD, Professor of Biology and Director of the MIT Ludwig Center for Molecular Oncology at the Massachusetts Institute of Technology. "The bidirectional communication between breast cancer cells and the nearby MSCs results in the acquisition of malignant traits by cancer cells, including their spread to distant sites in the body where they seed potentially lethal metastases."
Says Karnoub, "Now that the functions of tumor promoters and tumor suppressors are being appreciated with increased clarity, it would aid greatly if we can understand how these major cancer regulators are themselves regulated by what's outside the cancer cell. In concert with designing therapies that can enter inside the cell to directly inhibit such active players, one could perhaps design a therapy that inhibits the interaction of the cancer cell with its microenvironment, thereby shutting off the desired pathways altogether."
Study coauthors include BIDMC investigators Christelle P. El-Haibi (first author), Antoine Campagne, Anthony Y. Collmann, and Eva Csizmadia; George W. Bell of the Whitehead Institute for Biomedical Research; Jiangwen Zhang of the Faculty of Arts and Sciences, Harvard University; David Wood and Sangeeta N. Bhatia of the Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology; Cally M. Scherber, Mehmet Toner and Daniel Irimia of Massachusetts General Hospital; and Odette Mariani and Anne Vincent-Salomon of the Institut Curie, Paris, France.
This work was supported by grants from the National Institutes of Health (R21CA135601) and startup funds from BIDMC and the Sidney Kimmel Cancer Research Foundation. Antoine Karnoub is a 2010 Kimmel Scholar and a recipient of a 2012 Career Catalyst Research Award from Susan G. Komen for the Cure.
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The above story is reprinted from materials provided by Beth Israel Deaconess Medical Center, via EurekAlert!, a service of AAAS.
Note: Materials may be edited for content and length. For further information, please contact the source cited above.
Journal Reference:
C. P. El-Haibi, G. W. Bell, J. Zhang, A. Y. Collmann, D. Wood, C. M. Scherber, E. Csizmadia, O. Mariani, C. Zhu, A. Campagne, M. Toner, S. N. Bhatia, D. Irimia, A. Vincent-Salomon, A. E. Karnoub. Critical role for lysyl oxidase in mesenchymal stem cell-driven breast cancer malignancy. Proceedings of the National Academy of Sciences, 2012; DOI: 10.1073/pnas.1206653109
Note: If no author is given, the source is cited instead.
Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.

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Sunday, October 21, 2012

Green Tea and Cancer Prevention: New Clues

By Kathleen Doheny
WebMD Health News

Reviewed by Louise Chang, MD

Oct. 18, 2012 (Anaheim, Calif.) -- Green tea and its extracts have long been studied for health benefits, including cancer prevention.

Now, researchers have new clues about how it may work to help prevent or slow the growth of prostate and breast cancers.

Researchers presented the new findings here today at the American Association for Cancer Research meeting on cancer prevention.

Men with prostate cancer who drank green tea had less prostate tissue inflammation, linked to cancer growth, and other changes than those who didn't drink it, says Susanne M. Henning, PhD, RD, adjunct professor at the David Geffen School of Medicine at the University of California, Los Angeles.

''We were able to show the green tea polyphenols (antioxidants) reached the prostate tissue and they did modify inflammation of the prostate," she says. Polyphenols are antioxidants that protect against cell damage.

Henning's team assigned 79 men with prostate cancer scheduled to undergo surgery to drink either six cups of brewed green tea or water daily. They did so for three to eight weeks, depending on when their surgery was scheduled.

Before and after the study, Henning obtained urine and blood samples. She collected samples of prostate tissue after the surgery.

She reported on the 67 men who finished the study. Levels of prostate-specific antigen, or PSA, were lower after the study in those who drank green teas. Higher levels of PSA, a protein produced by the prostate gland, may reflect prostate cancer.

An indicator of inflammation, called nuclear factor-kappaB, was also reduced in those who drank green tea compared to those who didn't, Henning found. Inflammation is linked to cancer growth.

"We were not able to inhibit tumor growth," she says. But the study length may not have been long enough to show that; a longer-term study is needed, she says.

The National Institutes of Health funded the study.

Prostate cancer is typically a slow-growing cancer, Henning says. That makes it an ideal cancer to try diet interventions to slow it even more.

"Green tea is high in polyphenols and it's convenient," she says.

Other research has found that green tea may slow prostate cancer. An Italian study found that men who had a precursor to prostate cancer and drank green tea were less likely to get prostate cancer, Henning says.

Now, Henning is studying whether adding quercetin, an antioxidant found in apples and onions, to the green tea will ramp up its cancer-fighting ability.

Sumanta Pal, MD, assistant professor of medical oncology at the City of Hope Comprehensive Cancer Center in Duarte, Calif., reviewed the study findings for WebMD.

"Studies such as this are critical to confirm or support a plausible explanation for how green tea may work," he says. More study is needed, however, before making any diet recommendations.

Other researchers reported that an extract from green tea, Polyphenon E, may help inhibit breast cancer by affecting substances called growth factors. Growth factors are involved in the signals that tell breast cancer to grow.

In earlier research, Katherine Crew, MD, assistant professor of medicine and epidemiology at Columbia University Medical Center in New York, had assigned 40 women already treated for breast cancer to take 400, 600, or 800 milligrams of the extract or to take a placebo twice daily for six months.

That was a study to examine any toxic effects of the extract. For the current study, she evaluated blood and urine samples from 34 of the women to see how the extract might work as a cancer fighter.

"We wanted to better understand the biological effects," she says.

"After two months of Polyphenon E, there was a reduction in hepatocyte growth factor," she says. This is one of the growth factors that affect breast cancer cell growth, spread, and invasion. That reduction declined and was not different from the placebo group at four months, however.

It's still too early to recommend green tea extract as a way to prevent breast cancer, Crew says.

The new research on green tea and breast cancer adds to growing evidence of its benefits, according to Joanne Mortimer, MD, director of the Women's Cancer Program at the City of Hope Comprehensive Cancer Center.

"There really does seem to be something there," she says. The new study provides a potential explanation for why green tea may help, she says.

So should women drink green tea with an eye to prevention of breast cancer?

"I don't think we are quite ready to make that leap," Mortimer says. "But it is pretty interesting."

These findings were presented at a medical conference. They should be considered preliminary as they have not yet undergone the "peer review" process, in which outside experts scrutinize the data prior to publication in a medical journal.

SOURCES: Susanne M. Henning, PhD, RD, adjunct professor, David Geffen School of Medicine, University of California, Los Angeles. Katherine D. Crew, MD, assistant professor of medicine and epidemiology, Columbia University Medical Center, New York. American Association for Cancer Research International Conference on Frontiers in Cancer Prevention Research, Oct. 16-19, 2012, Anaheim, Calif. Joanne Mortimer, MD, director of the Women's Cancer Program, City of Hope Comprehensive Cancer Center, Duarte, Calif. Sumanta Pal, MD, assistant professor of medical oncology, City of Hope Comprehensive Cancer Center Duarte, Calif.

©2012 WebMD, LLC. All Rights Reserved.



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Friday, October 19, 2012

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